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改良废弃泥浆固化体的力学试验及应用研究

胡佳 杜烨 刘永超 张倩 李兵兵 王浩 王康 姚懿煊

胡佳, 杜烨, 刘永超, 张倩, 李兵兵, 王浩, 王康, 姚懿煊. 改良废弃泥浆固化体的力学试验及应用研究[J]. 岩土工程技术, 2025, 39(6): 922-929. doi: 10.20265/j.cnki.issn.1007-2993.2024-0470
引用本文: 胡佳, 杜烨, 刘永超, 张倩, 李兵兵, 王浩, 王康, 姚懿煊. 改良废弃泥浆固化体的力学试验及应用研究[J]. 岩土工程技术, 2025, 39(6): 922-929. doi: 10.20265/j.cnki.issn.1007-2993.2024-0470
Hu Jia, Du Ye, Liu Yongchao, Zhang Qian, Li Bingbing, Wang Hao, Wang Kang, Yao Yixuan. Mechanical test and application of improved waste mud solidified body[J]. GEOTECHNICAL ENGINEERING TECHNIQUE, 2025, 39(6): 922-929. doi: 10.20265/j.cnki.issn.1007-2993.2024-0470
Citation: Hu Jia, Du Ye, Liu Yongchao, Zhang Qian, Li Bingbing, Wang Hao, Wang Kang, Yao Yixuan. Mechanical test and application of improved waste mud solidified body[J]. GEOTECHNICAL ENGINEERING TECHNIQUE, 2025, 39(6): 922-929. doi: 10.20265/j.cnki.issn.1007-2993.2024-0470

改良废弃泥浆固化体的力学试验及应用研究

doi: 10.20265/j.cnki.issn.1007-2993.2024-0470
基金项目: 国家自然科学基金(52178343)
详细信息
    作者简介:

    胡 佳,男,1986年生,硕士,高级工程师,从事建筑工程、轨道建设工程设计、施工管理的研究。E-mail:307513642@qq.com

    通讯作者:

    刘永超,男,1970年生,博士,教授级高级工程师,主要从岩土工程设计与施工技术研究。 E-mail:chao96521@vip.sina.com

  • 中图分类号: TU502

Mechanical test and application of improved waste mud solidified body

  • 摘要: 废弃泥浆有效处置已成为工程建设和环境保护的问题之一,基于废弃泥浆资源化理念,将实际工程中的废弃泥浆取出并测定其参数,然后掺入不同比例的膨润土、粉煤灰及水泥进行固化改良,制备膏状浆液。通过正交设计进行9组试验,分析不同龄期下无侧限抗压强度的影响因素及其显著性。试验表明:试样的无侧限抗压强度随着养护龄期的增加而增大,泥浆比例对不同养护龄期下试样的无侧限抗压强度影响最为显著,3 d和28 d时各因素对无侧限抗压强度影响的显著性顺序为:泥浆比例>粉煤灰掺量>膨润土掺量;7 d和14 d时各因素对无侧限抗压强度影响的显著性顺序为:泥浆比例>膨润土掺量>粉煤灰掺量。研究成果可为废弃浆液资源化利用提供借鉴。

     

  • 图  1  无侧限抗压强度试验

    图  2  各因素与3 d无侧限抗压强度关系图

    图  3  各因素与7 d无侧限抗压强度关系图

    图  4  各因素与14 d无侧限抗压强度关系图

    图  5  各因素与28 d无侧限抗压强度关系图

    图  6  无侧限抗压强度试验值与预测值关系图

    图  7  工程应用试验及测试

    表  1  各因素水平表

    水平因素
    A/%B/%C
    11902.5
    226153
    333303.5
    下载: 导出CSV

    表  2  正交试验数据表 MPa

    编号ABC3 d7 d14 d28 d
    Z1A1B1C10.874.005.485.83
    Z2A1B2C30.622.032.562.69
    Z3A1B3C20.812.883.764.98
    Z4A2B1C30.612.203.003.22
    Z5A2B2C20.763.373.884.97
    Z6A2B3C10.944.396.578.32
    Z7A3B1C20.603.194.484.65
    Z8A3B2C10.914.936.117.67
    Z9A3B3C30.712.453.814.39
    下载: 导出CSV

    表  3  3 d无侧限抗压强度极差分析结果

    Ki因素
    ABC
    K12.302.082.72
    K22.312.292.17
    K32.222.461.94
    $ {\overline K _1} $0.770.690.91
    $ {\overline K _2} $0.770.760.72
    $ {\overline K _3} $0.740.820.65
    R0.030.130.27
    下载: 导出CSV

    表  4  7 d无侧限抗压强度极差分析结果

    Ki因素
    ABC
    K18.919.3913.32
    K29.9610.339.44
    K310.579.726.68
    $ {\overline K _1} $2.973.134.44
    $ {\overline K _2} $3.323.443.15
    $ {\overline K _3} $3.523.242.23
    R0.550.312.21
    下载: 导出CSV

    表  5  14 d无侧限抗压强度极差分析结果

    Ki因素
    ABC
    K111.8012.9618.16
    K213.4512.5512.12
    K314.4014.149.37
    $ {\overline K _1} $3.934.326.05
    $ {\overline K _2} $4.484.184.04
    $ {\overline K _3} $4.804.713.12
    R0.870.532.93
    下载: 导出CSV

    表  6  28 d无侧限抗压强度极差分析结果

    Ki 因素
    A B C
    K1 13.50 13.70 21.82
    K2 16.51 15.33 14.60
    K3 16.71 17.69 10.30
    $ {\overline K _1} $ 4.50 4.57 7.27
    $ {\overline K _2} $ 5.50 5.11 4.87
    $ {\overline K _3} $ 5.57 5.90 3.43
    R 1.07 1.33 3.84
    下载: 导出CSV
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  • 收稿日期:  2024-10-14
  • 修回日期:  2025-01-08
  • 录用日期:  2025-04-09
  • 网络出版日期:  2025-12-08
  • 刊出日期:  2025-12-08

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